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Fabrication and strength-based design of a meso forceps
M. E. Aguirre
, G. Hayes
, C. Yuangyai
,
M. Frecker
,
J. Adair
, N. Antolino
Mechanical Engineering
Materials Research Institute (MRI)
Materials Science and Engineering
Penn State Cancer Institute
Cancer Institute, Experimental Therapeutics
One Health Microbiome Center
Research output
:
Chapter in Book/Report/Conference proceeding
›
Conference contribution
4
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Scopus citations
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Keyphrases
Meso
100%
Forceps
100%
Strengths-based
100%
Slurry
50%
Strength of Materials
50%
Ultimate Strength
50%
Large Aspect Ratio
50%
Process Optimization
25%
Two Dimensional
25%
Design Performance
25%
Performance Prediction
25%
Optimization Algorithm
25%
Fabrication Methods
25%
Pyrolysis
25%
Design Techniques
25%
Optimization Problem
25%
Manufacturing Process
25%
Full Density
25%
Optimization Methods
25%
Infiltration
25%
Dimensional Parameters
25%
Ceramic Components
25%
Manufacturing Methods
25%
Surgical Instruments
25%
Screen Printing
25%
Nanoparticulate
25%
ANSYS
25%
Design Optimization Method
25%
Manufacturing Materials
25%
Gelcasting
25%
Squeegee
25%
Photoresist Mold
25%
UV Lithography
25%
Optimization Module
25%
Manufacturing Constraints
25%
Sharp Edge
25%
Stress Constraints
25%
Microforceps
25%
Lithography Technique
25%
Engineering
Optimization Method
100%
Mesoscale
100%
Ultimate Strength
100%
Aspect Ratio
100%
Pyrolysis
50%
Design Optimization
50%
Two Dimensional
50%
Manufacturing Process
50%
Optimal Design
50%
Optimisation Problem
50%
Optical Lithography
50%
Design Technique
50%
Photoresist
50%
Sintered Part
50%
Manufacturing Technique
50%
Stress Constraint
50%
Begin Process
50%
Excess Slurry
50%
Material Science
Strength of Materials
100%
Density
50%
Lithography
50%
Gel Casting
50%